A bearing bushing has an outer lateral surface (2), an inside bore (1) arranged eccentrically to the lateral surface (2), as well as a flange (3) extending beyond the lateral surface. In the flange (3), on a circle (5) arranged concentrically to the lateral surface (2), there are bores (6) for receiving the fastening screws (14) which engage bores (7) on an equally-large circle (5') in the machine part (4). The eccentricity of the inside bore (1) of the bearing bushing is asymmetrical in at least one plane in relation to the lateral surface (2) of the bearing bushing or in relation to the circle (5'), containing two perpendicular planes of symmetry, of bores (7) in machine part (4). The center (M1) of the inside bore (1) lies outside of the two axes of symmetry (11) of the lateral surface (2) of the circle (5') of bores (7).
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1. bearing bushing fastened to a machine part (4), with the bearing bushing having an outside lateral surface (2), an inside bore (1) arranged eccentrically in relation to the lateral surface (2), as well as a flange (3) extending beyond the lateral surface, in which flange (3) bores (6) are arranged on a circle (5), which is concentric in relation to the lateral surface (2), for receiving fastening screws (14) which engage bores (7), arranged on an equally-large circle (5') in machine part (4), characterized in that the eccentricity of the inside bore (1) is asymmetrical on at least one plane in relation to the lateral surface (2) with two perpendicular planes of symmetry, and that the center (M1) of the inside bore (1) lies outside the two axes of symmetry (9) of the lateral surface (2).
4. machine part for receiving a bearing bushing having an outside lateral surface (2), an inside bore (1) arranged eccentrically in relation to the lateral surface (2), as well a flange (3) extending beyond the lateral surface, in which flange bores (6) for receiving fastening screws (14) are arranged on a circle (5), which is concentric in relation to the lateral surface (2), and which fastening screws engage bores (7), arranged on an equally-large circle (5') in the machine part (4), characterized in that the eccentricity of the inside bore (1) of the bearing bushing is asymmetrical on at least one plane in relation to the circle (5'), containing two perpendicular axes of symmetry (11), of bores (7) in the machine part (4), and that the center of the inside bore (1) lies outside the two axes of symmetry (11) of the circle (5') of bores (7).
2. Bushing bearing according to
3. Bushing bearing according to
5. machine part according to
6. machine part according to
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The invention relates to a bearing bushing and a machine part for receiving the bearing bushing which are adjustable.
Such bearing bushings are used in mechanical engineering in order to be able to modify the mutual distance between two components, e.g. two shafts, within a certain range. The bores, uniformly arranged around the circumference of the flange for receiving the fastening screws, permit the bearing bushing to be fastened to a machine part in various adjustment positions by means of the fastening screws.
In known bearing bushings, the eccentricity of inside bore and lateral surface is symmetrical to the identically-arranged (arranged in the same way) drill patterns of the N bores in the flange and the machine part, i.e. the center of the inside bore lies on one of the two axes of symmetry, which are perpendicular to one another, of the lateral surface. With such a symmetrical design, the number of possible adjustment points of the bearing bushing versus the machine part is limited to, at the most, the next higher whole number of half N/2 of the existing bores N. A finer graduation of the adjustment of the eccentricity is only possible by increasing the number of bores for receiving the fastening screws, which increases the manufacturing costs.
The object of the invention is to modify the generic bearing bushing and the generic machine part for receiving the bearing bushing in such a way that, with the same number N of bores in the flange and the receiving machine part, a finer adjustment of the eccentricity can be achieved by enlarging the known N/2 positions to N positions and excluding the source of error of the parallelism deviation of the axis.
The invention and the advantages associated with the invention are explained below, using several examples of embodiment shown in the drawing, where
The bearing bushing shown has an inside bore 1 for receiving a shaft, and an outside lateral surface 2. The bearing bushing is further equipped with a flange 3 extending beyond the lateral surface 2, which flange is mounted on a machine part 4 by means of fastening screws 14. For receiving the fastening screws 14, the flange 3 is provided with bores 6 arranged on a circle 5 which is concentric to the lateral surface 2. On a circle 5' of the same size in
The inside bore 1 of the bearing bushing is arranged eccentrically to lateral surface 2. This configuration of the bearing bushing serves to modify, within a certain range, the distance between two shafts facing each other in such a way that the shaft axes are situated exactly coaxially to one another. The range of adjustability depends on the degree of the eccentricity x and amounts to no more than double the value 2× of the center distance of the circles established by the inside bore 1 and the lateral surface 2. In order to achieve a finer graduation, circle 5, for instance, has nine evenly-distributed bores 6 for receiving the fastening screws 14.
In the case of the bearing bushing shown in
The bearing bushing according to the invention, shown in
The straight line 12 in
In the embodiment of the invention shown in
Compared to the embodiment of the invention according to
According to
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